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Jonathan Dunn, Tom Coupe, Jeanette King, and Girish Prayag

__ _ Visualizing Natural Language Processing _ is the second course in the Text Analytics with Python professional certificate (or you can study it as a stand-alone course). Natural language processing (NLP) is only useful when its results are meaningful to humans. This second course continues by looking at how to make sense of our results using real-world visualizations.

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__ _ Visualizing Natural Language Processing _ is the second course in the Text Analytics with Python professional certificate (or you can study it as a stand-alone course). Natural language processing (NLP) is only useful when its results are meaningful to humans. This second course continues by looking at how to make sense of our results using real-world visualizations.

How can we understand the incredible amount of knowledge that has been stored as text data? This course is a practical and scientific introduction to text analytics. That means you’ll learn how it works and why it works at the same time.

On the practical side, you’ll learn how to visualize and interpret the output of text analytics. You’ll learn how to create visualizations ranging from word clouds, heatmaps, and line plots to distribution plots, choropleth maps, and facet grids. You’ll work through real case-studies using jupyter notebooks and to visualize the results of machine learning in Python using packages like pandas, matplotlib, and seaborn.

On the scientific side, you’ll learn what it means to understand language computationally. How do word embeddings and topic models relate to human cognition? Artificial intelligence and humans don’t view language in the same way. You’ll see how both deep learning and human beings interact with the meaning that is encoded in language.

What you'll learn

  1. Practice using document similarity and topic models to work with large data sets.
  2. Visualize and interpret text analytics, including statistical significance testing.
  3. Assess the scientific and ethical foundations of new applications for text analysis

What's inside

Learning objectives

  • Practice using document similarity and topic models to work with large data sets.
  • Visualize and interpret text analytics, including statistical significance testing.
  • Assess the scientific and ethical foundations of new applications for text analysis

Syllabus

Module 3. Applying Text Analytics to New Fields:
Learn how to apply computational linguistics to new problems and new data sets.
Module 1. Text Similarity:
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Learn how to use machine learning to find out which words and documents have similar meanings.
Module 2. Visualizing Text Analytics:
Learn how to explain a model using visualization and significance testing.

Good to know

Know what's good
, what to watch for
, and possible dealbreakers
Examines how the mind interacts with language through scientific and ethical analysis
Teaches text analytics from a practical and scientific perspectives
Instructors are recognized in the field of text analytics
Develops skills for working with large data sets
Applies text analytics to emerging fields

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Activities

Coming soon We're preparing activities for Text Analytics 2: Visualizing Natural Language Processing. These are activities you can do either before, during, or after a course.

Career center

Learners who complete Text Analytics 2: Visualizing Natural Language Processing will develop knowledge and skills that may be useful to these careers:
Data Scientist
Data Scientists develop and apply mathematical and statistical models to extract meaningful insights from large amounts of structured and unstructured data. This course, __Text Analytics 2: Visualizing Natural Language Processing__, equips individuals with the skills to visualize and interpret text analytics results, enabling them to effectively communicate findings to stakeholders and make data-driven decisions.
Machine Learning Engineer
Machine Learning Engineers design, build, and deploy machine learning models to solve real-world problems. This course provides a solid foundation in text analytics and visualization techniques, which are essential for developing and evaluating machine learning models that work with text data.
Natural Language Processing Engineer
Natural Language Processing Engineers build and maintain systems that enable computers to understand, interpret, and generate human language. This course focuses on visualization techniques for text analytics, which are critical for understanding and evaluating the performance of NLP systems.
Data Analyst
Data Analysts collect, clean, and analyze data to identify trends, patterns, and insights. This course provides practical experience in visualizing and interpreting text analytics results, which is essential for effectively communicating insights to stakeholders.
Business Analyst
Business Analysts help organizations understand their business needs and develop solutions to improve performance. This course provides valuable skills in visualizing and interpreting text analytics, which can be used to gain insights into customer feedback, market research, and other business-related data.
UX Researcher
UX Researchers conduct research to understand user needs and improve the user experience of products and services. This course provides a foundation in text analytics and visualization techniques, which are essential for analyzing user feedback and identifying areas for improvement.
Technical Writer
Technical Writers create and maintain technical documentation, such as user manuals, white papers, and marketing materials. This course provides skills in visualizing and interpreting text analytics, which can be used to improve the clarity and effectiveness of technical documentation.
Content Strategist
Content Strategists develop and execute content strategies to achieve business goals. This course provides a foundation in text analytics and visualization techniques, which can be used to analyze content performance and identify opportunities for improvement.
Digital Marketing Analyst
Digital Marketing Analysts track and analyze digital marketing campaigns to measure their effectiveness. This course provides skills in visualizing and interpreting text analytics, which can be used to analyze customer feedback, social media data, and other digital marketing data.
Information Architect
Information Architects design and organize information systems to make them easy to find and use. This course provides a foundation in text analytics and visualization techniques, which can be used to analyze user behavior and improve the organization and structure of information systems.
Librarian
Librarians help people find and access information. This course provides skills in visualizing and interpreting text analytics, which can be used to improve the organization and accessibility of library collections.
Archivist
Archivists preserve and manage historical records and artifacts. This course provides skills in visualizing and interpreting text analytics, which can be used to analyze and organize archival collections.
Museum curator
Museum Curators plan and manage exhibitions and collections. This course provides skills in visualizing and interpreting text analytics, which can be used to analyze visitor feedback and improve the design and interpretation of museum exhibits.
Teacher
Teachers educate and inspire students. This course may be useful for teachers who want to use text analytics to improve their teaching practices, such as analyzing student feedback or creating personalized learning materials.
Journalist
Journalists research, write, and report on news stories. This course may be useful for journalists who want to use text analytics to analyze news data, identify trends, and improve their storytelling techniques.

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